CN102582616B - CVT (continuously variable transmission) hybrid electric vehicle power source torque optimizing distribution method - Google Patents
CVT (continuously variable transmission) hybrid electric vehicle power source torque optimizing distribution method Download PDFInfo
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Abstract
The invention discloses a CVT (continuously variable transmission) hybrid electric vehicle power source torque optimizing distribution method which comprises the steps of (1) building a whole vehicle transmission system dynamics equation which is related to an accelerator pedal opening value by taking the accelerator pedal opening value, accelerator pedal speed and power supply SOC (state of charge) as optimizing state variables and taking a required torque value as basic; (2) taking engine power as required input power of a whole vehicle, and setting power consumed for overcoming traveling resistance of the vehicle and storage battery power as output power of a system, and combining the whole vehicle transmission system dynamics equation in step (1) so as to obtain final required output power of the system; and (3) defining system efficiency according to the ratio of the required output power and the required input power, taking the highest system efficiency as an optimizing target, and optimizing to obtain power source target torque. The method of the invention can improve the whole vehicle working efficiency, solves a torque distribution problem at a driving working state, and can be widely applied to the field of hybrid electric vehicles.
Description
Technical field
The present invention relates to mixed power electric car field, particularly a kind of about propulsion source torque optimizing distribution method under the driving operating mode of CVT (continuously variable automatic transmission) mixed power electric car.
Background technology
Hybrid vehicle drives under operating mode, formulates rational energy management strategy and can improve car load operating characteristic, and then improve its fuel economy.Hybrid vehicle for assembling CVT (continuously variable automatic transmission), CVT speed ratio can change within the specific limits continuously, therefore Comprehensive Control driving engine, motor and CVT be can pass through, propulsion source torque distribution and the optimization of car load operating characteristic more preferably realized.
For the energy-optimised assignment problem of CVT hybrid vehicle, current most research all take engine operation in efficient district as controlling target, ignored the impact of motor, battery and driving system self efficiency on hybrid power system capacity usage ratio.Also have a few studies person to be up to target with system effectiveness and carried out correlative study, but its state variable is the speed of a motor vehicle and acceleration/accel, and acceleration/accel is difficult to reflect intuitively driver intention and impression.
Summary of the invention
For the problems referred to above, the object of this invention is to provide and a kind ofly with system effectiveness, be up to target, take the speed of a motor vehicle, acceleration pedal aperture and battery SOC as Optimal State variable, meeting under the prerequisite of car load dynamic property, improve as far as possible car load work efficiency, Optimization Solution propulsion source target torque, solves the CVT hybrid electric vehicle power source torque optimizing distribution method that drives torque Optimizing Allocation under operating mode.
For achieving the above object, the present invention takes following technical scheme: a kind of CVT hybrid electric vehicle power source torque optimizing distribution method, its step is as follows: (1) take the state-of-charge of acceleration pedal opening value, the speed of a motor vehicle and battery is Optimal State variable, take demand torque value as basis, set up a car load driving system kinetics equation relevant to acceleration pedal opening value; (2) the demand horsepower input using engine power as Full Vehicle System, to overcome the power of Vehicle Driving Cycle resistance consumption and the horsepower output that storage battery power setting is system, the car load driving system kinetics equation in integrating step (1) obtains final system requirements horsepower output; (3) the ratio define system efficiency of horsepower output and demand horsepower input according to demand, with system effectiveness, be up to optimization aim, optimization obtains the independent drive pattern of driving engine, engine drive adds propulsion source target torque under power generation mode and these three kinds driving mode of operations of motor assistant mode.
In described step (1), described car load driving system kinetics equation is:
In formula, m is complete vehicle quality; G is acceleration due to gravity; F is coefficient of rolling resistance; α is road grade angle; C
dfor aerodynamic drag factor; A is wind area; U is the speed of a motor vehicle; Du/dt is vehicle acceleration; R is radius of wheel; T
dfor demand torque; i
0for base ratio; J
rfor vehicle wheel rotation inertia; ω
rfor vehicle wheel rotational speed; J
efor engine moment inertia; ω
efor engine speed; J
mfor electric machine rotation inertia; ω
mfor motor speed; i
cVTfor CVT transmitting ratio; η
cVTfor CVT efficiency.
In described step (3), the independent drive pattern of described driving engine, engine drive add system effectiveness η under power generation mode and three kinds of driving mode of operations of motor assistant mode
sysbe respectively: driving engine pattern: the η that works independently
sys=P
out/ P
in=T
di
0u η
e/ (T
eω
er), engine drive adds power generation mode: η
sys=P
out/ P
in=(T
di
0u/r+P
bat1η
bat_charge) η
e/ (T
eω
e), motor power-assisted mode of operation: η
sys=P
out/ P
in=(T
di
0u/r-P
bat2/ η
bat_discharge) η
e/ (T
eω
e), in formula, P
outfor system requirements horsepower output; P
infor system requirements horsepower input; P
bat1for battery horsepower input; P
bat2for battery horsepower output; η
bat_chargecharge efficiency for storage battery; η
bat_dischargedischarge efficiency for storage battery; T
efor engine output torque; η
efor engine efficiency.
The present invention is owing to taking above technical scheme, it has the following advantages: 1, the present invention is owing to adopting the CVT hybrid vehicle system consisting of driver's operation platform, CVT hybrid electric vehicle complete vehicle control system, engine controller, electric machine controller, continuously variable automatic transmission controller, main reduction gear and battery pack, according to predefined objective function and constraint condition in propulsion source torque distribution module, CVT hybrid electric vehicle power source is optimized, its optimization efficiency is higher.2, the present invention is owing to adopting the optimization distribution that realizes propulsion source torque based on CVT hybrid electric vehicle complete vehicle control system, be mixed power electric car for assembling CVT at the propulsion source torque optimizing distribution method driving under operating mode, the method can be closely by driver's operation and vehicle control association in practical application.3, the present invention is because the Optimal State variable adopting is the speed of a motor vehicle, acceleration pedal opening value and battery SOC, and in conjunction with vehicle drive system kinetics equation, draw demand horsepower output and the demand horsepower input of Full Vehicle System, thereby obtain the expression formula of system effectiveness, with system effectiveness, be up to target, meeting under the prerequisite of car load dynamic property, improved car load work efficiency, optimize and draw the driving engine of guaranteeing that system effectiveness is the highest, the output torque of motor target and CVT goals ratio are with the Changing Pattern of the speed of a motor vehicle and acceleration pedal opening value APS, the concrete torque distribution problem driving under operating mode that solves.The present invention can be widely used in mixed power electric car field.
Accompanying drawing explanation
Fig. 1 is CVT hybrid vehicle system structural representation of the present invention;
Fig. 2 is hybrid electric vehicle power of the present invention source torque distribution schematic diagram.
The specific embodiment
Below in conjunction with drawings and Examples, the present invention is described in detail.
As shown in Figure 1, CVT of the present invention (continuously variable automatic transmission) hybrid vehicle system comprises driver's operation platform 1, CVT hybrid electric vehicle complete vehicle control system 2, engine controller (ECU) 3, electric machine controller (IPU) 4, continuously variable automatic transmission controller (TCU) 5, main reduction gear 6 and battery 7.
In driver's operation platform 1, be provided with accelerator pedal position sensor 11 and brake pedal position sensor 12, accelerator pedal position sensor 11 is sent to CVT hybrid electric vehicle complete vehicle control system 2 by the acceleration pedal opening value APS collecting; Brake pedal position sensor 12 is also sent to CVT hybrid electric vehicle complete vehicle control system 2 by the brake pedal opening value BPS collecting.CVT hybrid electric vehicle complete vehicle control system 2 is optimized after processing according to acceleration pedal opening value APS and the speed of a motor vehicle that fed back to by ECU 3, to ECU 3, send engine torque signal Te respectively, to IPU 4, send motor torque signal Tm, to TCU 5, send gear ratio signal i
cVT.ECU 3 is according to the work of engine torque signal Te control engine, and IPU 4 controls machine operation according to motor torque signal Tm, and TCU 5 is according to gear ratio signal i
cVTcontrol CVT work, TCU 5 output signals transfer to main reduction gear 6, and transmission of power to wheel drives Vehicle Driving Cycle the most at last.Wherein, battery 7 is motor power supply.
In above-described embodiment, CVT hybrid electric vehicle complete vehicle control system 2 comprises Driver intention recognition module 21 and propulsion source torque distribution module 22, Driver intention recognition module 21 receives after acceleration pedal opening value APS and the speed of a motor vehicle, according to Driver intention recognition module 21, can obtain demand torque relevant to acceleration pedal opening value APS and the speed of a motor vehicle, and the torque of gained demand is sent in propulsion source torque distribution module 22, by the interior predefined objective function of propulsion source torque distribution module 22 and constraint condition, CVT hybrid electric vehicle power source torque of the present invention is optimized.
As shown in Figure 2, CVT hybrid electric vehicle power source torque optimizing distribution method of the present invention is mainly based on CVT hybrid electric vehicle complete vehicle control system 2, to realize the optimization distribution of propulsion source, at the propulsion source torque optimizing distribution method driving under operating mode for the mixed power electric car that assembles CVT, the method can be closely by driver's operation and vehicle control association in practical application, the Optimal State variable adopting is the speed of a motor vehicle, the SOC of acceleration pedal opening value APS and battery 7 (state-of-charge of battery), and in conjunction with vehicle drive system kinetics equation, draw demand horsepower output and the demand horsepower input of Full Vehicle System, thereby obtain the expression formula of system effectiveness, with system effectiveness, be up to target, meeting under the prerequisite of car load dynamic property, improve car load work efficiency, optimize and draw the driving engine of guaranteeing that system effectiveness is the highest, the output torque of motor target and CVT goals ratio are with the Changing Pattern of the speed of a motor vehicle and acceleration pedal opening value APS, the concrete torque distribution problem driving under operating mode that solves, wherein, drive operating mode to comprise three kinds of mode of operations: the independent drive pattern of driving engine, engine drive adds power generation mode and motor assistant mode.The concrete steps of CVT hybrid electric vehicle power source torque optimizing distribution method are as follows:
1) Driver intention recognition module 21, according to the acceleration pedal opening value APS and the speed of a motor vehicle that receive, can obtain meeting the demand torque T of driving demand
d, and demand torque value is sent in propulsion source torque distribution module 22.
2) the demand torque T of propulsion source torque distribution module 22 to receive
dfor basis, according to automobile power theory, set up one and demand torque T
dthe car load driving system kinetics equation being associated, the demand torque T being sent to due to Driver intention recognition module 21
daPS is relevant to acceleration pedal opening value, therefore, is actually and has set up a car load driving system kinetics equation relevant to acceleration pedal opening value APS in propulsion source torque distribution module 22, and this equation is as follows:
As shown in Figure 1, in embodiment because driving engine and motor are coaxial connections, so there is following relation between both rotating speeds:
In formula, m is complete vehicle quality; G is acceleration due to gravity; F is coefficient of rolling resistance; α is road grade angle; C
dfor aerodynamic drag factor; A is wind area; U is the speed of a motor vehicle; Du/dt is vehicle acceleration; R is radius of wheel; T
dfor demand torque; i
0for base ratio; J
rfor vehicle wheel rotation inertia; ω
rfor vehicle wheel rotational speed; J
efor engine moment inertia; ω
efor engine speed; J
mfor electric machine rotation inertia; ω
mfor motor speed; i
cVTfor CVT transmitting ratio; η
cVTfor CVT efficiency.
3) the demand horsepower input P using engine power as whole CVT hybrid vehicle system
in, its expression formula is:
P
in=T
eω
e/η
e, (4)
In formula, T
efor engine output torque; ω
efor engine speed; η
efor engine efficiency.
4) power (comprising rolling resistance, grade resistance, air resistance and resistance due to acceleration) of Vehicle Driving Cycle resistance consumption and the horsepower output that storage battery power is regarded system as will be overcome, and consider that the charge or discharge of battery motor subsystem help power-actuated demand power, at the independent drive pattern of driving engine, engine drive, add under power generation mode and these three kinds driving operating mode mode of operations of motor assistant mode the demand horsepower output P of system
out1can be expressed as:
When driving engine works independently pattern, the demand horsepower output P of system
out1for:
When engine drive adds power generation mode, the demand horsepower output P of system
out1for:
During motor power-assisted mode of operation, the demand horsepower output P of system
out1for:
Wherein, δ is car load correction coefficient of rotating mass, and
p
bat1for battery horsepower input; P
bat2for battery horsepower output; η
bat_chargecharge efficiency for storage battery; η
bat_dischargedischarge efficiency for storage battery;
By step 2) in formula (1), formula (2) and formula (3) respectively with formula (5), (6), (7), simultaneous, cancellation intermediate variable can obtain driving system requirements horsepower output P under three kinds of different working modes of operating mode
outfinal expression formula is respectively:
When driving engine works independently pattern: P
out=T
di
0u/r, (8)
When engine drive adds power generation mode: P
out=T
di
0u/r+P
bat1η
bat_charge, (9)
During motor power-assisted mode of operation: P
out=T
di
0u/r-P
bat2/ η
bat_discharge, (10)
5) according to step 4) and step 3) in demand horsepower output and the ratio of demand horsepower input carry out define system efficiency, drive system effectiveness η under three kinds of different working modes of operating mode
sysexpression formula is respectively:
Driving engine pattern: the η that works independently
sys=P
out/ P
in=T
di
0u η
e/ (T
eω
er), (11)
Engine drive adds power generation mode: η
sys=P
out/ P
in=(T
di
0u/r+P
bat1η
bat_charge) η
e/ (T
eω
e), (12)
Motor power-assisted mode of operation: η
sys=P
out/ P
in=(T
di
0u/r-P
bat2/ η
bat_discharge) η
e/ (T
eω
e), (13)
6) to system effectiveness η
sysbe optimized, draw and guarantee that driving engine that system effectiveness is the highest, the output torque of motor target and CVT goals ratio, with the Changing Pattern of the speed of a motor vehicle and acceleration pedal opening value APS, obtain propulsion source target torque; First by system maximal efficiency max (η
sys) be set as optimization aim function, then according to the vehicle powertrain constraint condition that the mode of operation of driving system sets under three kinds of mode of operations of unifying, be respectively:
When driving engine works independently pattern, constraint condition is:
When engine drive adds power generation mode, constraint condition is:
During motor power-assisted mode of operation, constraint condition is:
Wherein, T
mfor motor torque; η
m1for electric power generation efficiency; η
m2for motor powered efficiency; T
emaxfor motor torque maxim; ω
eminand ω
emaxbe respectively engine speed minimum value and maxim; T
mmaxfor motor torque maxim; P
bat maxfor power of battery maxim; i
cvt minand i
cvt maxbe respectively toric transmission fastest ratio and maximum transmission ratio; SOC
minand SOC
maxbe respectively battery SOC minimum value and maxim.
Above-mentioned steps 6) in, with system maximal efficiency max (η
sys) be optimization aim, according to optimizing constraint condition, optimization aim is optimized.Wherein, the driving engine essence of optimizing under pattern that works independently is: under given certain speed of a motor vehicle and acceleration pedal opening value APS prerequisite, find best CVT transmitting ratio and make system effectiveness the highest.Engine drive adds the essence of optimizing under power generation mode and motor assistant mode: under the prerequisite of given certain speed of a motor vehicle, acceleration pedal opening value APS and battery SOC, find best motor torque and CVT transmitting ratio makes system effectiveness the highest.Finally draw and guarantee that driving engine that system effectiveness is the highest, the output torque of motor target and CVT goals ratio are with the Changing Pattern of the speed of a motor vehicle and acceleration pedal opening value APS.
The various embodiments described above are only for illustrating the present invention; the structure of each parts and connection mode all can change to some extent; on the basis of technical solution of the present invention; all improvement and equivalents of the connection of indivedual parts and structure being carried out according to the principle of the invention, all should not get rid of outside protection scope of the present invention.
Claims (3)
1. a CVT hybrid electric vehicle power source torque optimizing distribution method, its step is as follows:
(1) take the state-of-charge of acceleration pedal opening value, the speed of a motor vehicle and battery is Optimal State variable, take demand torque value as basis, sets up a car load driving system kinetics equation relevant to acceleration pedal opening value;
(2) the demand horsepower input using engine power as Full Vehicle System, to overcome the power of Vehicle Driving Cycle resistance consumption and the horsepower output that storage battery power setting is system, the car load driving system kinetics equation in integrating step (1) obtains final system requirements horsepower output;
(3) the ratio define system efficiency of horsepower output and demand horsepower input according to demand, with system effectiveness, be up to optimization aim, optimization obtains the independent drive pattern of driving engine, engine drive adds propulsion source target torque under power generation mode and these three kinds driving mode of operations of motor assistant mode, and its step is as follows:
1. the demand horsepower input P using engine power as whole CVT hybrid vehicle system
in;
2. the power of Vehicle Driving Cycle resistance consumption and the horsepower output that storage battery power is regarded system as will be overcome, and consider that the charge or discharge of battery motor subsystem help power-actuated demand power, obtain adding under power generation mode and these three kinds driving operating mode mode of operations of motor assistant mode at the independent drive pattern of driving engine, engine drive the demand horsepower output P of system
out;
3. the ratio of horsepower output and demand horsepower input defines and drives system effectiveness η under three kinds of different working modes of operating mode according to demand
sys;
4. to system effectiveness η
sysbe optimized, draw and guarantee that driving engine that system effectiveness is the highest, the output torque of motor target and CVT goals ratio, with the Changing Pattern of the speed of a motor vehicle and acceleration pedal opening value APS, obtain propulsion source target torque; First by system maximal efficiency max (η
sys) be set as optimization aim function, then according to the vehicle powertrain constraint condition that the mode of operation of driving system sets under three kinds of mode of operations of unifying, be respectively:
When driving engine works independently pattern, constraint condition is:
When engine drive adds power generation mode, constraint condition is:
During motor power-assisted mode of operation, constraint condition is:
Wherein, T
dfor demand torque; T
efor engine output torque; ω
efor engine speed; U is the speed of a motor vehicle; R is radius of wheel; i
0for base ratio; ω
rfor vehicle wheel rotational speed; ω
mfor motor speed; i
cVTfor CVT transmitting ratio; η
cVTfor CVT efficiency; P
bat1for battery horsepower input; P
bat2for battery horsepower output; T
mfor motor torque; η
m1for electric power generation efficiency; η
m2for motor powered efficiency; T
emaxfor motor torque maxim; ω
eminand ω
emaxbe respectively engine speed minimum value and maxim; T
mmaxfor motor torque maxim; P
batmaxfor power of battery maxim; i
cvtminand i
cvtmaxbe respectively toric transmission fastest ratio and maximum transmission ratio; SOC
minand SOC
maxbe respectively battery SOC minimum value and maxim.
2. a kind of CVT hybrid electric vehicle power source torque optimizing distribution method as claimed in claim 1, is characterized in that: in described step (1), described car load driving system kinetics equation is:
In formula, m is complete vehicle quality; G is acceleration due to gravity; F is coefficient of rolling resistance; α is road grade angle; C
dfor aerodynamic drag factor; A is wind area; U is the speed of a motor vehicle; Du/dt is vehicle acceleration; R is radius of wheel; T
dfor demand torque; i
0for base ratio; J
rfor vehicle wheel rotation inertia; ω
rfor vehicle wheel rotational speed; J
efor engine moment inertia; ω
efor engine speed; J
mfor electric machine rotation inertia; ω
mfor motor speed; i
cVTfor CVT transmitting ratio; η
cVTfor CVT efficiency.
3. a kind of CVT hybrid electric vehicle power source torque optimizing distribution method as claimed in claim 1 or 2, it is characterized in that: in described step (3), the independent drive pattern of described driving engine, engine drive add system effectiveness η under power generation mode and three kinds of driving mode of operations of motor assistant mode
sysbe respectively:
Driving engine pattern: the η that works independently
sys=P
out/ P
in=T
di
0u η
e/ (T
eω
er),
Engine drive adds power generation mode: η
sys=P
out/ P
in=(T
di
0u/r+P
bat1η
bat_charge) η
e/ (T
eω
e),
Motor power-assisted mode of operation: η
sys=P
out/ P
in=(T
di
0u/r-P
bat2/ η
bat_discharge) η
e/ (T
eω
e),
In formula, P
outfor system requirements horsepower output; P
infor system requirements horsepower input; P
bat1for battery horsepower input; P
bat2for battery horsepower output; η
bat_chargecharge efficiency for storage battery; η
bat_dischargedischarge efficiency for storage battery; T
efor engine output torque; η
efor engine efficiency.
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